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网络非均质性对多孔介质中电动传输的影响。

Impact of network heterogeneity on electrokinetic transport in porous media.

作者信息

Alizadeh Shima, Bazant Martin Z, Mani Ali

机构信息

Department of Mechanical Engineering, Flow Physics and Computational Engineering, Stanford University, Stanford, CA 94305, USA; Center for Turbulence Research, Stanford University, Stanford, CA 94305, USA.

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA; Department of Mathematics, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

J Colloid Interface Sci. 2019 Oct 1;553:451-464. doi: 10.1016/j.jcis.2019.06.023. Epub 2019 Jun 10.

Abstract

We present a numerical study of electrokinetic transport in porous media, focusing on the role of heterogeneity in a porous microstructure on ion concentration polarization and over-limiting current. For simplicity, the porous medium is modeled as a network of long, thin charged cylindrical pores, each governed by one-dimensional effective transport equations. For weak surface conduction, when sufficiently large potential is applied, we demonstrate that electrokinetic transport in a porous network can be dominated by electro-convection via internally induced flow loops, which is not properly captured by existing homogenized models. We systematically vary the topology and "accessivity" of the pore network and compare with simulations of traditional homogenized parallel-pore (capillary-bundle) models, in order to reveal the effects of regular and hierarchical connectivity. Our computational framework sheds light on the complex physics of electrokinetic phenomena in microstructures and may be used to design porous media for applications, such as water desalination and purification by shock electrodialysis.

摘要

我们对多孔介质中的电动传输进行了数值研究,重点关注多孔微观结构中的非均质性对离子浓度极化和过极限电流的作用。为简单起见,将多孔介质建模为长而细的带电圆柱形孔的网络,每个孔由一维有效传输方程控制。对于弱表面传导,当施加足够大的电势时,我们证明多孔网络中的电动传输可以由内部诱导的流动回路引起的电对流主导,而现有的均匀化模型无法正确捕捉这种现象。我们系统地改变孔网络的拓扑结构和“可达性”,并与传统均匀化平行孔(毛细管束)模型的模拟结果进行比较,以揭示规则和分层连通性的影响。我们的计算框架揭示了微观结构中电动现象的复杂物理过程,可用于设计用于水脱盐和冲击电渗析净化等应用的多孔介质。

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